中国生物防治学报 ›› 2026, Vol. 42 ›› Issue (2): 278-291.DOI: 10.16409/j.cnki.2095-039x.2026.05.002
• 创刊40周年纪念专栏 • 上一篇
束长龙1, 彭东海2, 曹蓓蓓3, 谢家健1, 张杰1,3
收稿日期:2026-04-20
发布日期:2026-05-14
通讯作者:
束长龙
作者简介:束长龙,博士、研究员,E-mail:shuchanglong@caas.cn。
基金资助:SHU Changlong1, PENG Donghai Peng2, CAO Beibei3, XIE Jiajian1, ZHANG Jie1,3
Received:2026-04-20
Published:2026-05-14
摘要: 苏云金芽胞杆菌(Bacillus thuringiensis,Bt)作为农业生物防治的核心微生物资源,是我国生物防治学科发展的重要缩影。本文系统回顾我国Bt研究与应用经技术追赶到自主创新,进而跻身国际前列的发展历程,系统阐述我国在Bt杀虫基因挖掘、杀虫机理解析、杀虫剂创制及转基因抗虫作物应用等领域的核心成果,同时剖析当前Bt研究面临的害虫抗性升级、制剂田间稳定性不足以及资源利用方式单一等挑战,进一步结合人工智能、合成生物学等前沿技术,从新型杀虫蛋白定向设计、制剂产业化升级、抗性监测治理、跨领域应用扩展等方面展望未来研究方向,为我国农业绿色防控体系完善和粮食安全保障提供理论支撑与实践参考。
中图分类号:
束长龙, 彭东海, 曹蓓蓓, 谢家健, 张杰. 我国苏云金芽胞杆菌研究应用发展历程与展望[J]. 中国生物防治学报, 2026, 42(2): 278-291.
SHU Changlong, PENG Donghai Peng, CAO Beibei, XIE Jiajian, ZHANG Jie. Research and Application Development History and Prospects of Bacillus thuringiensis in China[J]. Chinese Journal of Biological Control, 2026, 42(2): 278-291.
| [1] 耿丽丽, 陶岭梅, 张宏军, 等. 苏云金芽胞杆菌安全性的研究进展[J]. 中国生物防治学报, 2021, 37(1): 2-10. [2] Slamti L, Lereclus D. Bacillus thuringiensis and insects: a century of intimate history[J]. Journal of Bacteriology, 2026, 208(3): e0038125. [3] Roh J Y, Choi J Y, Li M S, et al. Bacillus thuringiensis as a specific, safe, and effective tool for insect pest control[J]. Journal of Microbiology and Biotechnology, 2007, 17(4): 547-559. [4] 曹骥, 贾佩华, 林佩华. 用苏云金杆菌孢子粉防治玉米螟[J]. 昆虫学报, 1955, 5(3): 349. [5] 刘崇乐. 苏云金杆菌研究的五十年[M]. 北京: 科学出版社, 1962. [6] 关雄, 蔡峻. 我国苏云金杆菌研究60年[J]. 微生物学通报, 2014, 41(3): 459-465. [7] 喻子牛, 何进, 王阶平. 苏云金芽胞杆菌分子生物学[M]. 北京: 科学出版社, 2017. [8] Shu C L, Zhang F J, Huang Y, et al. Current status and research trends of Bt insecticidal gene[J]. Scientia Sinica, 2016, 46(5): 548-555. [9] 刘明, 孙海燕, 郑树生. 苏云金芽胞杆菌Vip3Aa11定点突变对棉铃虫杀虫活性的影响[J]. 黑龙江八一农垦大学学报, 2019, 31(1): 21-27. [10] 朱自敏, 宋荣, 余子全, 等. 苏云金芽胞杆菌杀虫晶体蛋白Cry7Ba1溶解性分子改良[J]. 农业生物技术学报, 2008, 16(6): 1001-1005. [11] Tan S Q, Shang Z X, Jia H C, et al. Enhancing Bacillus thuringiensis Cry8Ea1 toxicity: insights into protease sensitivity for the evolutionary adaptation of Cry toxins to insect hosts[J]. International Journal of Biological Macromolecules, 2025, 308(Pt1): 142246. [12] Wang K, Raymond B, Zhang J, et al. Resurrecting the past: ancestral Bacillus thuringiensis pesticidal proteins reveal broad-spectrum insecticidal activity and protein engineering hotspots[J]. Science Bulletin, 2026, 71: 1008-1011. [13] 王宇航, 束长龙, 耿丽丽, 等. 苏云金芽胞杆菌G033A产业化现状及应用前景分析[J]. 中国生物防治学报, 2020, 36(6): 837-841. [14] Liang J G, Yang X W, Jiao Y, et al. The evolution of China's regulation of agricultural biotechnology[J]. aBiotech, 2022, 3(4): 237-249. [15] Shen H Y, He Y Y, Yang Y Q, et al. Synergistic epistasis confers strong and dominant resistance to Bacillus thuringiensis toxin Cry1Ac in Helicoverpa armigera[J]. Pesticide Biochemistry and Physiology, 2026, 216(Pt 2): 106812. [16] Lu Y, Wyckhuys K A G, Yang L, et al. Bt cotton area contraction drives regional pest resurgence, crop loss, and pesticide use[J]. Plant Biotechnology Journal, 2022, 20(2): 390-398. [17] Jin L, Zhang H, Lu Y, et al. Large-scale test of the natural refuge strategy for delaying insect resistance to transgenic Bt crops[J]. Nature Biotechnology, 2015, 33(2): 169-174. [18] 田颖川, 蔡发兴, 王瑛, 等. 苏云金杆菌δ-内毒素基因在大肠杆菌中的克隆及表达[J]. 生物工程学报, 1989, 5(1): 11-18, 87. [19] Wang J H, Boets A, van Rie J, et al. Characterization of cry1, cry2, and cry9 genes in Bacillus thuringiensis isolates from China[J]. Journal of Invertebrate Pathology, 2003, 82(1): 63-71. [20] Song F P, Zhang J, Gu A X, et al. Identification of cry1I-type genes from Bacillus thuringiensis strains and characterization of a novel cry1I-type gene[J]. Applied and Environmental Microbiology, 2003, 69(9): 5207-5218. [21] Li H T, Shu C L, He X M, et al. Detection and identification of vegetative insecticidal proteins vip3 genes of Bacillus thuringiensis strains using polymerase chain reaction-high resolution melt analysis[J]. Current Microbiology, 2012, 64(5): 463-468. [22] Zhang F J, Shu C L, Crickmore N, et al. Use of redundant exclusion PCR to identify a novel Bacillus thuringiensis Cry8 toxin gene from pooled genomic DNA[J]. Applied and Environmental Microbiology, 2016, 82(13): 3808-3815. [23] Ye W X, Zhu L, Liu Y Y, et al. Mining new crystal protein genes from Bacillus thuringiensis on the basis of mixed plasmid-enriched genome sequencing and a computational pipeline[J]. Applied and Environmental Microbiology, 2012, 78(14): 4795-4801. [24] Bi Y, Zhang Y R, Shu C L, et al. Genomic sequencing identifies novel Bacillus thuringiensis Vip1/Vip2 binary and Cry8 toxins that have high toxicity to Scarabaeoidea larvae[J]. Applied Microbiology and Biotechnology, 2015, 99(2): 753-760. [25] Liu H L, Zheng J S, Bo D X, et al. BtToxin_Digger: a comprehensive and high-throughput pipeline for mining toxin protein genes from Bacillus thuringiensis[J]. Bioinformatics, 2021, 38(1): 250-251. [26] Kobilov F B, Li P, Nazirov M M, et al. Discovery and expression of insecticidal proteins via genome mining of novel Bacillus thuringiensis strain Bt1Fo[J]. Frontiers in Microbiology, 2025, 16: 1679336. [27] Xu G L, Wang Z Y, Bai Y Q, et al. Identification of a biomarker for Bacillus thuringiensis strains with high toxicity against Spodoptera frugiperda based on insecticidal gene linkage analysis[J]. Pest Management Science, 2024, 80(10): 5473-5480. [28] Wang K, Shu C L, Bravo A, et al. Development of an online genome sequence comparison resource for Bacillus cereus sensu lato strains using the efficient composition vector method[J]. Toxins (Basel), 2023, 15(6): 393. [29] Shu C L, Zhang J T, Chen G H, et al. Use of a pooled clone method to isolate a novel Bacillus thuringiensis Cry2A toxin with activity against Ostrinia furnacalis[J]. Journal of Invertebrate Pathology, 2013, 114(1): 31-34. [30] Li Y, Shu C L, Zhang X, et al. Mining rare and ubiquitous toxin genes from a large collection of Bacillus thuringiensis strains[J]. Journal of Invertebrate Pathology, 2014, 122: 6-9. [31] Guo Y J, Weng M Q, Sun Y Z, et al. Bacillus thuringiensis toxins with nematocidal activity against the pinewood nematode Bursaphelenchus xylophilus[J]. Journal of Invertebrate Pathology, 2022, 189: 107726. [32] Panhwer S N, Gadahi J A, Luo Q H, et al. The anthelmintic potential of Bacillus thuringiensis to counter the anthelmintic resistance against Haemonchus contortus[J]. Experimental Parasitology, 2023, 250: 108533. [33] Li Z J, Lu Y Q, Liao K, et al. A novel tpp-like protein from Bacillus thuringiensis strain GXUN31-2 with nematicidal activity against Meloidogyne enterolobii[J]. Microbial Pathogenesis, 2025, 198: 107191. [34] 张杰, 束长龙, 张春鸽. Bt杀虫基因专利保护现状与趋势[J]. 植物保护, 2011, 37(3): 1-6, 11. [35] Soberón M, Gill S S, Bravo A. Signaling versus punching hole: how do Bacillus thuringiensis toxins kill insect midgut cells?[J]. Cellular and Molecular Life Sciences, 2009, 66(8): 1337-1349. [36] Pigott C R, Ellar D J. Role of receptors in Bacillus thuringiensis crystal toxin activity[J]. Microbiology and Molecular Biology Reviews, 2007, 71(2): 255-281. [37] Arenas I, Bravo A, Soberón M, et al. Role of alkaline phosphatase from Manduca sexta in the mechanism of action of Bacillus thuringiensis Cry1Ab toxin[J]. Journal of Biological Chemistry, 2010, 285(17): 12497-12503. [38] McNall R J, Adang M J. Identification of novel Bacillus thuringiensis Cry1Ac binding proteins in Manduca sexta midgut through proteomic analysis[J]. Insect Biochemistry and Molecular Biology, 2003, 33(10): 999-1010. [39] Griffitts J S, Haslam S M, Yang T, et al. Glycolipids as receptors for Bacillus thuringiensis crystal toxin[J]. Science, 2005, 307(5711): 922-925. [40] Peng D H, Wan D F, Cheng C S, et al. Nematode-specific cadherin CDH-8 acts as a receptor for Cry5B toxin in Caenorhabditis elegans[J]. Applied Microbiology and Biotechnology, 2018, 102(8): 3663-3673. [41] Peng D H, Xu X H, Ruan L F, et al. Enhancing Cry1Ac toxicity by expression of the Helicoverpa armigera cadherin fragment in Bacillus thuringiensis[J]. Research in Microbiology, 2010, 161(5): 383-389. [42] Gao M J, Zhong J F, Lu L N, et al. Synergism of Cry1 toxins by a fusion protein derived from a cadherin fragment and an antibody peptide[J]. Journal of Agricultural and Food Chemistry, 2024, 72(36): 19689-19698. [43] Wang L, Xu D, Huang Y X, et al. Mutation in the cadherin gene is a key factor for pink bollworm resistance to Bt Cotton in China[J]. Toxins (Basel), 2022, 14(1): 23. [44] Wang L, Xu M, He L, et al. Mutation in PgABCC2 confers low-level resistance to Cry1Ac in pink bollworm[J]. Pest Management Science, 2024, 80(7): 3326-3333. [45] Guan F, Hou B F, Dai X G, et al. Multiple origins of a single point mutation in the cotton bollworm tetraspanin gene confers dominant resistance to Bt cotton[J]. Pest Management Science, 2021, 77(3): 1169-1177. [46] Pardo-López L, Soberón M, Bravo A. Bacillus thuringiensis insecticidal three-domain Cry toxins: mode of action, insect resistance and consequences for crop protection[J]. FEMS Microbiology Reviews, 2013, 37(1): 3-22. [47] Gahan L J, Gould F, Heckel D G. Identification of a gene associated with Bt resistance in Heliothis virescens[J]. Science, 2001, 293(5531): 857-860. [48] Gahan L J, Pauchet Y, Vogel H, et al. An ABC transporter mutation is correlated with insect resistance to Bacillus thuringiensis Cry1Ac toxin[J]. PLoS Genetics, 2010, 6(12): e1001248. [49] Jurat-Fuentes J L, Gahan L J, Gould F L, et al. The HevCaLP protein mediates binding specificity of the Cry1A class of Bacillus thuringiensis toxins in Heliothis virescens[J]. Biochemistry, 2004, 43(44): 14299-14305. [50] Jurat-Fuentes J L, Karumbaiah L, Jakka S R, et al. Reduced levels of membrane-bound alkaline phosphatase are common to lepidopteran strains resistant to Cry toxins from Bacillus thuringiensis[J]. PLoS ONE, 2011, 6(3): e17606. [51] Herrero S, Gechev T, Bakker P L, et al. Bacillus thuringiensis Cry1Ca-resistant Spodoptera exigua lacks expression of one of four aminopeptidase N genes[J]. BMC Genomics, 2005, 6: 96. [52] Baxter S W, Badenes-Pérez F R, Morrison A, et al. Parallel evolution of Bacillus thuringiensis toxin resistance in lepidoptera[J]. Genetics, 2011, 189(2): 675-679. [53] Crickmore N, Berry C, Panneerselvam S, et al. A structure-based nomenclature for Bacillus thuringiensis and other bacteria-derived pesticidal proteins[J]. Journal of Invertebrate Pathology, 2021, 186: 107438. [54] Shabbir M Z, Yang X B, Batool R, et al. Bacillus thuringiensis and chlorantraniliprole trigger the expression of detoxification-related genes in the larval midgut of Plutella xylostella[J]. Frontiers in Physiology, 2021, 12: 780255. [55] Zolfaghari M, Yin F, Jurat-Fuentes J L, et al. Effects of Bacillus thuringiensis treatment on expression of detoxification genes in chlorantraniliproleresistant Plutella xylostella[J]. Insects, 2024, 15(8): 595. [56] Yang J, Chen S Y, Xu X J, et al. Novel-miR-310 mediated response mechanism to Cry1Ac protoxin in Plutella xylostella (L.)[J]. International Journal of Biological Macromolecules, 2022, 219: 587-596. [57] Yang J, Xu X J, Lin S J, et al. Profiling of microRNAs in midguts of Plutella xylostella provides novel insights into the Bacillus thuringiensis resistance[J]. Frontiers in Genetics, 2021, 12: 739849. [58] Yang Y B, Huang X Y, Yuan W L, et al. Bacillus thuringiensis cry toxin triggers autophagy activity that may enhance cell death[J]. Pesticide Biochemistry and Physiology, 2021, 171: 104728. [59] Xiao Z, Yao X, Bai S T, et al. Involvement of an enhanced immunity mechanism in the resistance to Bacillus thuringiensis in lepidopteran pests[J]. Insects, 2023, 14(2): 151. [60] Chen F, Pang C Y, Zheng Z, et al. Aminopeptidase MNP-1 triggers intestine protease production by activating daf-16 nuclear location to degrade pore-forming toxins in Caenorhabditis elegans[J]. PLoS Pathogens, 2023, 19(7): e1011507. [61] Jin Z, Wang X L, Wu Y D, et al. Differential roles of ABCC2, ABCC3, and cadherin in mediating Cry1Ac toxicity in Spodoptera exigua[J]. Pesticide Biochemistry and Physiology, 2026, 216(Pt 1): 106721. [62] Zhou Y Y, Liu Y S, Chen J L, et al. ABCC3 mediates insecticide metabolism and functions as a receptor for Bt toxins in Plutella xylostella[J]. Insect Science, 2025. doi: 10.1111/1744-7917.70156. [63] Wang G, Zhang J, Song F P, et al. Engineered Bacillus thuringiensis GO33A with broad insecticidal activity against lepidopteran and coleopteran pests[J]. Applied Microbiology and Biotechnology, 2006, 72(5): 924-930. [64] Peng D H, Chai L, Wang F, et al. Synergistic activity between Bacillus thuringiensis Cry6Aa and Cry55Aa toxins against Meloidogyne incognita[J]. Microbial Biotechnology, 2011, 4(6): 794-798. [65] Zheng J S, Gao Q, Liu L, et al. Comparative genomics of Bacillus thuringiensis reveals a path to specialized exploitation of multiple invertebrate hosts[J]. mBio, 2017, 8(4): e00822-17. [66] Sun H W, Xiang X, Li Q, et al. Comparative genome analysis of Bacillus thuringiensis strain HD521 and HS18-1[J]. Scientific Reports, 2021, 11(1): 16590. [67] Yuan Y H, Gao M Y, Peng Q, et al. Genomic analysis of a phage and prophage from a Bacillus thuringiensis strain[J]. Journal of General Virology, 2014, 95(Pt 3): 751-761. [68] Geng P, Zhao P, Wan X, et al. Interspecies horizontal transfer and specific integration of the mosquitocidal toxin-encoding plasmid pTAND672-2 from Bacillus thuringiensis subsp. israelensis to Lysinibacillus sphaericus[J]. Applied and Environmental Microbiology, 2023, 89(2): e0165222. [69] Wang C, Zhao R, Yang W J, et al. Cell-to-cell natural transformation mediated efficient plasmid transfer between Bacillus species[J]. International Journal of Molecular Sciences, 2025, 26(2): 621. [70] Zhao F, Mao Y F, Yang J H, et al. Enhancing Bacillus thuringiensis performance: fertilizer-driven improvements in biofilm formation, UV protection, and pest control efficacy[J]. Microorganisms, 2025, 13(3): 499. [71] Wang Z X, Zhang Y M, Chen J J, et al. L-amino acids modulate biofilm formation, UV resistance, and insecticidal activity in Bacillus thuringiensis formulations: mechanisms and optimization[J]. Pesticide Biochemistry and Physiology, 2026, 216(Pt 1): 106713. [72] Hu G H, Wang Y, Liu X, et al. Species and condition shape the mutational spectrum in experimentally evolved biofilms[J]. mSystems, 2023, 8(5): e0054823. [73] Du X, Zhang Y L, Wu H N, et al. ROS-mediated TCA cycle is greatly related to the UV resistance of Bacillus thuringiensis[J]. Pesticide Biochemistry and Physiology, 2023, 193: 105429. [74] Zhang Y L, Chen C X, Du X, et al. Urea Cycle of Bacillus thuringiensis affects its survival under UV stress[J]. Journal of Agricultural and Food Chemistry, 2024, 72(13): 7291-7298. [75] Hou S, Zhang R B, Lereclus D, et al. The transcription factor CpcR determines cell fate by modulating the initiation of sporulation in Bacillus thuringiensis[J]. Applied and Environmental Microbiology, 2022, 88(6): e0237421. [76] Zhang R B, Luo Y, Gang L L, et al. Key amino acids residues enhance the ability of CpcR to activate cry gene expression in Bacillus thuringiensis[J]. Research in Microbiology, 2023, 174(6): 104051. [77] Cai X, Qin J X, Li X L, et al. LipR functions as an intracellular pH regulator in Bacillus thuringiensis under glucose conditions[J]. mLife, 2023, 2(1): 58-72. [78] Shen X X, Yu Q Y, Liu H H, et al. Transition phase regulator AbrB positively regulates the sip1Ab1 gene expression in Bacillus thuringiensis[J]. Microbiology Spectrum, 2021, 9(1): e0007521. [79] Wang Z Y, Gan C X, Wang J, et al. Nutrient conditions determine the localization of Bacillus thuringiensis Vip3Aa protein in the mother cell compartment[J]. Microbial Biotechnology, 2021, 14(2): 551-560. [80] Fu Y, Yu Z Q, Liu S, et al. c-di-GMP regulates various phenotypes and insecticidal activity of gram-positive Bacillus thuringiensis[J]. Frontiers in Microbiology, 2018, 9: 45. [81] Liu L, Luo D H, Zhang Y J, et al. Characterization of the dual regulation by a c-di-GMP riboswitch Bc1 with a long expression platform from Bacillus thuringiensis[J]. Microbiology Spectrum, 2024, 12(7): e0045024. [82] Peng D H, Luo X X, Zhang N, et al. Small RNA-mediated Cry toxin silencing allows Bacillus thuringiensis to evade Caenorhabditis elegans avoidance behavioral defenses[J]. Nucleic Acids Research, 2018, 46(1): 159-173. [83] Zhu L Y, Chu Y W, Zhang B W, et al. Creation of an industrial Bacillus thuringiensis strain with high melanin production and UV tolerance by gene editing[J]. Frontiers in Microbiology, 2022, 13: 913715. [84] Tan T T, Zhang X D, Miao Z, et al. A single point mutation in hmgA leads to melanin accumulation in Bacillus thuringiensis BMB181[J]. Enzyme and Microbial Technology, 2019, 120: 91-97. [85] Zhu Z R, Chen W H, Zhou H B, et al. ARTP and NTG compound mutations improved Cry protein production and virulence of Bacillus thuringiensis X023[J]. Applied Microbiology and Biotechnology, 2022, 106(11): 4211-4221. [86] Shabbir M Z, He L, Shu C L, et al. Assessing the single and combined toxicity of chlorantraniliprole and Bacillus thuringiensis (GO33A) against four selected strains of Plutella xylostella (Lepidoptera: Plutellidae), and a gene expression analysis[J]. Toxins (Basel), 2021, 13(3): 227. [87] 束长龙, 张贤, 王奎, 等. 几种常用化学杀虫剂对Bt菌株生长影响的初步研究[J]. 中国生物防治学报, 2022, 38(5): 1166-1173. [88] 张慧慧, 陈安琪, 单提升, 等. 京郊西兰花小菜蛾的田间防治药剂筛选与评价[J]. 植物保护, 2020, 46(1): 262-265. [89] 王翠翠, 陈安琪, 董文阳, 等. 虫螨腈与Bt混配对小菜蛾的田间防效及虫螨腈在西兰花上的残留消解动态[J]. 农药学学报, 2021, 23(5): 922-929. [90] Du C Y, Cao S Y, Shi X Y, et al. Genetic and biochemical characterization of a gene operon for trans-aconitic acid, a novel nematicide from Bacillus thuringiensis[J]. Journal of Biological Chemistry, 2017, 292(8): 3517-3530. [91] 张安红, 肖娟丽, 赵战胜, 等. 转基因抗虫棉研究进展[J]. 生物技术进展, 2023, 13(5): 657-662. [92] Fisher K E, Coates B, Dopman E B, et al. Evidence of field-evolved resistance in Ostrinia nubilalis to Bacillus thuringiensis Cry1Ab and Cry1A.105+Cry2Ab2 sweet corn in Connecticut, USA[J]. Journal of Economic Entomology, 2026, 119(2): 1078-1092. [93] Afzal M B S, Ijaz M, Abbas N, et al. Resistance of lepidopteran pests to Bacillus thuringiensis toxins: evidence of field and laboratory evolved resistance and cross-resistance, mode of resistance inheritance, fitness costs, mechanisms involved and management options[J]. Toxins, 2024, 16(7): 315. [94] Tabashnik B E, Fabrick J A, Carrière Y. Global patterns of insect resistance to transgenic Bt crops: the first 25 years[J]. Journal of Economic Entomology, 2023, 116(2): 297-309. [95] Fei H Y, Li Y J, Liu Y J, et al. Advancing protein evolution with inverse folding models integrating structural and evolutionary constraints[J]. Cell, 2025, 188(17): 4674-4692. [96] Zhang J T, Yan J P, Zheng D S, et al. Expression of mel gene improves the UV resistance of Bacillus thuringiensis[J]. Journal of Applied Microbiology, 2008, 105(1): 151-158. [97] Hou Y J, Zhang X, Zhou L, et al. Evaluation of the strategy for insecticidal crystal encapsulation with cell wall in industrial processes[J]. Pest Management Science, 2025, 81(3): 1384-1392. [98] Idris A L, Li W T, Huang F G, et al. Impacts of UV radiation on Bacillus biocontrol agents and their resistance mechanisms[J]. World Journal of Microbiology & Biotechnology, 2024, 40(2): 58. [99] Wu H N, Du X, Guo X P, et al. Chitosan-based pickering double emulsion microcapsules improve the UV stability and the persistence of Bacillus thuringiensis on mosquito control[J]. Carbohydrate Polymers, 2025, 354: 123346. [100] Qin X, Xiang X M, Sun X W, et al. Preparation of nanoscale Bacillus thuringiensis chitinases using silica nanoparticles for nematicide delivery[J]. International Journal of Biological Macromolecules, 2016, 82: 13-21. [101] He X L, Sun Z Q, He K L, et al. Biopolymer microencapsulations of Bacillus thuringiensis crystal preparations for increased stability and resistance to environmental stress[J]. Applied Microbiology and Biotechnology, 2017, 101(7): 2779-2789. [102] Pan X H, Xu Z Y, Li L, et al. Adsorption of insecticidal crystal protein Cry11Aa onto nano-Mg(OH)(2): effects on bioactivity and anti-ultraviolet ability[J]. Journal of Agricultural and Food Chemistry, 2017, 65(43): 9428-9434. [103] Du H B, Li C R. Study on the mechanism of peanut resistance to Fusarium oxysporum infection induced by Bacillus thuringiensis TG5[J]. Frontiers in Microbiology, 2023, 14: 1251660. [104] Zhou Y, Choi Y L, Sun M, et al. Novel roles of Bacillus thuringiensis to control plant diseases[J]. Applied Microbiology and Biotechnology, 2008, 80(4): 563-572. [105] He C N, Ye W Q, Zhu Y Y, et al. Antifungal activity of volatile organic compounds produced by Bacillus methylotrophicus and Bacillus thuringiensis against five common spoilage fungi on loquats[J]. Molecules, 2020, 25(15): 3360. [106] Mo R X, Feng L J, Kong F J, et al. Bacillus thuringiensis G-5 efficiently suppresses Codonopsis pilosula postharvest diseases by generating antifungal volatile organic compounds[J]. Antonie Van Leeuwenhoek, 2025, 118(10): 145. [107] 王美玲, 耿丽丽, 房瑜, 等. 苏云金芽胞杆菌4BM1菌株对油菜菌核病的防治潜力[J]. 生物技术通报, 2024, 40(9): 260-269. [108] 荣哲, 吕凯旋, 王思佳, 等. 苏云金芽胞杆菌抗菌脂肽初步鉴定及抑菌活性测定[J]. 微生物学杂志, 2023, 43(1): 57-65. [109] Fatima R, Mahmood T, Moosa A, et al. Bacillus thuringiensis CHGP12 uses a multifaceted approach for the suppression of Fusarium oxysporum f. sp. ciceris and to enhance the biomass of chickpea plants[J]. Pest Management Science, 2023, 79(1): 336-348. [110] Bai Y, Zhou X, Smith D L. Enhanced soybean plant growth resulting from coinoculation of Bacillus strains with Bradyrhizobium japonicum[J]. Crop Science, 2003, 43(5): 1774-1781. [111] Liu X, Ruan L F, Peng D H, et al. Thuringiensin: a thermostable secondary metabolite from Bacillus thuringiensis with insecticidal activity against a wide range of insects[J]. Toxins (Basel), 2014, 6(8): 2229-2238. [112] Luo Y, Ruan L F, Zhao C M, et al. Validation of the intact zwittermicin A biosynthetic gene cluster and discovery of a complementary resistance mechanism in Bacillus thuringiensis[J]. Antimicrobial Agents and Chemotherapy, 2011, 55(9): 4161-4169. [113] Shao T M, Bai L Q, Zhang J, et al. A nonribosomal peptide synthetase gene tzw1 is involved in zwittermicin A biosynthesis in Bacillus thuringiensis G03[J]. Current Microbiology, 2008, 57(1): 61-66. [114] 张磊, 刘天昱, 闫成昭, 等. 一株黑土秸秆降解菌的分离鉴定及培养条件优化[J]. 农业环境科学学报, 2025, 44(9): 2418-2428. [115] 战磊, 王寒, 关罗浩, 等. 用于烟叶提质的苏云金芽孢杆菌SY-1产淀粉酶条件的优化研究[J]. 河南农业科学, 2022, 51(9): 159-170. [116] 胡格吉勒, 于富丽, 梁建忠, 等. 在蜱源性芽孢杆菌中产几丁质酶菌株的筛选及酶活性检测[J]. 中国兽医学报, 2025, 45(7): 1394-1401. [117] 阚嘉, 江宁, 王鑫, 等. 产蛋白酶苏云金芽孢杆菌的筛选及其在甲壳素制备中的应用[J]. 食品与发酵工业, 2025, 51(22): 247-253. [118] 许琳琳, 刘慧乾, 张梦瑶, 等. 低温脂肪酶产生菌的筛选、表达及酶学性质分析[J]. 食品工业科技, 2024, 45(20): 133-140. [119] 严婉芊, 毛馨缘, 戴余军, 等. 分离自苏云金芽胞杆菌的首例细菌乌头酸异构酶TbrA的酶学性质研究(英文)[J]. 微生物学报, 2021, 61(2): 388-397. [120] 孙康, 鲁明杰, 于爽, 等. 新型苏云金芽孢杆菌(-)γ-内酰胺酶基因的克隆与表达[J]. 微生物学通报, 2020, 47(7): 2040-2049. [121] 朱兴华. 产漆酶细菌的分离鉴定及其漆酶活性测定[J]. 佳木斯职业学院学报, 2018, 11: 388-389. [122] Yang Z F, Heater B S, Cuddington C T, et al. Targeted myoglobin delivery as a strategy for enhancing the sensitivity of hypoxic cancer cells to radiation[J]. iScience, 2020, 23(6): 101158. [123] Yang Z F, Lee M M M, Chan M K. Efficient intracellular delivery of p53 protein by engineered protein crystals restores tumor suppressing function in vivo[J]. Biomaterials, 2021, 271: 120759. [124] Yang Z F, Zheng J L, Chan C F, et al. Targeted delivery of antimicrobial peptide by Cry protein crystal to treat intramacrophage infection[J]. Biomaterials, 2019, 217: 119286. [125] Gao Z X, Wu C C, Wu J R, et al. Antioxidant and anti-inflammatory properties of an aminoglycan-rich exopolysaccharide from the submerged fermentation of Bacillus thuringiensis[J]. International Journal of Biological Macromolecules, 2022, 220: 1010-1020. [126] Gao Z X, Li H, Wen J G, et al. Bacillus thuringiensis exopolysaccharide BPS-2 ameliorates ulcerative colitis in a murine model through modulation of gut microbiota and suppression of the NF-κB cascade[J]. Foods, 2025, 14(13): 2378. |
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